Bispectral de-noising of the compound action potential for estimation of the nerve conduction velocity distribution

Citation
Fa. Papadopoulou et Sm. Panas, Bispectral de-noising of the compound action potential for estimation of the nerve conduction velocity distribution, MED ENG PHY, 21(6-7), 1999, pp. 499-505
Citations number
13
Categorie Soggetti
Multidisciplinary
Journal title
MEDICAL ENGINEERING & PHYSICS
ISSN journal
13504533 → ACNP
Volume
21
Issue
6-7
Year of publication
1999
Pages
499 - 505
Database
ISI
SICI code
1350-4533(199907/09)21:6-7<499:BDOTCA>2.0.ZU;2-7
Abstract
The distribution of the conduction velocities (DCV) of a peripheral nerve i s a powerful diagnostic tool for the assessment of neuromuscular disorders. Its efficient calculation depends on the signal-to-noise ratio (SNR) of th e acquired electroneurograms (ENGs), thus, time averaging is solely used. A n alternative way of improving the SNR is based on averaging in the bispect rum domain and it is proposed in this work. The compound action potential ( CAP) is a linear summation of the single fiber action potentials (SFAPs) pr opagating along the nerve fibers and can be expressed, in the discrete time , as the circular convolution of a delay sequence (DS) and the sampled SFAP . In the proposed method, averaging of low SNR CAP measurements is done in third order spectrum domain so no time alignment is required. Averaged bisp ectra are introduced in modified Hirose's method, to estimate the delay seq uence for a conduction distance I,. The lost linear phase is recovered by u sing the delay phase cepstrum. Finally, the DCV can be calculated from the estimated DS, according to the formulation of the forward problem. Comparis on between time and bispectrum averaging is performed using simulated data, proving the more efficient performance of the proposed method, especially in the case of noisy ENGs. (C) 1999 IPEM. Published by Elsevier Science Ltd . All rights reserved.